Field of the Invention
[0001] The present invention pertains to blends of semi-crystalline fluorinated polymer
and nucleating agent, coating compositions based on a semi-crystalline fluorinated
polymer, a nucleating agent and, optionally, an acrylic polymer, to methods of making
such coating compositions, and to coatings having improved gloss made from such coating
compositions.
Background of the Related Art
[0002] Compositions useful for forming coatings on substrate surfaces are known in the art
which utilize a semi-crystalline fluorinated polymer, a nucleating agent and an acrylic
polymer. See, for example,
U.S. Pat. Pub. No. 2005/0032968. The coatings thereby obtained have advantageous attributes, including the ability
to protect the underlying substrate surface from the weather and/or corrosive substances.
[0003] However, it would be desirable to develop ways to further improve the quality of
such coatings, in particular their glossiness and surface appearance.
Summary of the Invention
[0004] It has now been discovered that the gloss of a coating obtained from a composition
comprised of a particulate semi-crystalline fluorinated polymer and a nucleating agent
(optionally in combination with an acrylic polymer) may be increased by reducing the
particle size of the particulate semi-crystalline fluorinated polymer. That is, a
smaller semi-crystalline fluorinated polymer particle size has been found to result
in an enhancement of the glossiness of the cured coating produced by baking the composition
following application of the composition as a layer onto the surface of a substrate.
[0005] One embodiment of the invention provides a blend useful for formulating a coating
composition, wherein the blend comprises, consists essentially of, or consists of:
- a) a semi-crystalline fluorinated polymer in the form of particles having an MV particle
size of not more than 5 microns (in other embodiments, not more than 4 microns, not
more than 3 microns, not more than 2 microns, or not more than 1 micron); and
- b) a nucleating agent.
[0006] The blend may be comprised of from 0.01 to 10 % by weight of nucleating agent, based
on the total weight of nucleating agent and semi-crystalline fluorinated polymer.
The semi-crystalline fluorinated polymer may be, for example, a homopolymer of vinylidene
difluoride or a copolymer of vinylidene difluoride and at least one comonomer selected
from the group consisting of fluorinated ethylenic monomers, non-fluorinated ethylenic
monomers and non-fluorinated dienes. In certain embodiments of the invention, an acrylic
polymer may optionally be present; the acrylic polymer may be a polymer of monomers
which include one or more monomers selected from the group consisting of methyl (meth)acrylate,
ethyl (meth)acrylate and butyl(meth)acrylate. The particles of semi-crystalline fluorinated
polymer may have an MV particle size of not more than 4 microns. The nucleating agent
may, for example, be a tetrafluoroethylene homopolymer or a copolymer of tetrafluoroethylene
and at least one fluorinated ethylenic monomer. The nucleating agent may have a melting
point greater than that of the semi-crystalline fluorinated polymer and/or may be
in the form of particles having an MV particle size of not more than 5 microns. In
one embodiment, the semi-crystalline fluorinated polymer has a melt viscosity of at
least 2000 Pa.s (20 Kps) at 100 s
-1, as measured by ASTM D3825 at 232°C.
[0007] In other embodiments, the present invention provides a coating composition comprised
of, consisting essentially of, or consisting of:
- a) a semi-crystalline fluorinated polymer in the form of particles having an MV particle
size of not more than 5 microns (in other embodiments, not more than 4 microns, not
more than 3 microns, not more than 2 microns, or not more than 1 micron);
- b) a nucleating agent; and
- c) (optionally) an acrylic polymer.
[0008] The coating composition may, in certain embodiments, be additionally comprised of
at least one latent solvent for the semi-crystalline fluorinated polymer. In other
embodiments, the coating composition may be in the form of a dry powder (i.e., a powder
coating, the composition being a free-flowing dry powder) or in the form of an aqueous
latex.
[0009] In one embodiment, the coating composition is additionally comprised of at least
one pigment. In another embodiment, the coating composition is free of pigment and
is capable of providing a clear coat.
[0010] The coating composition, in certain embodiments of the invention, may contain an
amount of nucleating agent of from 0.01 to 10 % by weight or from 0.05 to 5 % by weight,
based on the total weight of nucleating agent and semi-crystalline fluorinated polymer.
[0011] In various embodiments of the invention, the semi-crystalline fluorinated polymer
may be a homopolymer of vinylidene difluoride; a copolymer of vinylidene difluoride
and at least one comonomer selected from the group consisting of fluorinated ethylenic
monomers, non-fluorinated ethylenic monomers and non-fluorinated dienes; or a copolymer
of vinylidene difluoride and 0.1 to 20 mol % in total of at least one monomer selected
from the group consisting of vinyl fluoride, hexafluoropropylene, trifluoroethylene,
chlorotrifluoroethylene and tetrafluoroethylene.
[0012] The acrylic polymer, in certain embodiments of the invention, may be a polymer of
one or more monomers selected from the group consisting of methyl(meth)acrylate,ethyl(meth)acrylate
and butyl (meth)acrylate, optionally in combination with one or more other monomers.
[0013] In other embodiments of the invention, the nucleating agent may be a tetrafluoroethylene
homopolymer or a copolymer of tetrafluoroethylene and at least one fluorinated ethylenic
monomer. The nucleating agent may have a melting point greater than that of the semi-crystalline
fluorinated polymer.
[0014] Also provided by the present invention is a coating on a substrate, wherein the coating
has been produced from a coating composition in accordance with any one of the above-mentioned
embodiments.
[0015] The present invention, in another aspect, provides a method of making a coating composition,
comprising blending a latex of a semi-crystalline fluorinated polymer with a latex
of a nucleating agent to obtain a blend, coagulating the blend to obtain a coagulated
blend, drying the coagulated blend to obtain a powder, milling the powder to achieve
particles having an MV particle size of not more than 5 microns, and, optionally,
blending the milled particles with an acrylic polymer and, optionally, a latent solvent
for the semi-crystalline fluorinated polymer.
[0016] The present invention, in another aspect, provides a method of making a coating composition,
comprising blending a latex of a semi-crystalline fluorinated polymer with a latex
of a nucleating agent to obtain a "master-batch" blend, coagulating the blend to obtain
a coagulated blend, drying the coagulated blend to obtain a master-batch powder, optionally
milling the master-batch powder to achieve particles having an MV particle size of
not more than 5 microns, and blending the master-batch powder or milled particles
with an additional quantity of semi-crystalline fluorinated polymer powder milled
to achieve particles having an MV particle size of not more than 5 microns, and, optionally,
one or both of an acrylic polymer and a latent solvent for the semi-crystalline fluorinated
polymer.
[0017] A method of making a coating on a substrate is additionally provided by the present
invention, the method comprising a stage of baking a substrate covered with a coating
composition in accordance with any one of the above-mentioned embodiments.
Detailed Description of the Invention
[0018] One component of the coating compositions of the present invention is a semi-crystalline
fluorinated polymer having an MV particle size of not more than 5 microns. In other
embodiments, the MV particle size of the semi-crystalline fluorinated polymer is not
more than 4 microns, not more than 3 microns, not more than 2 microns or even not
more than 1 micron. Reducing the MV particle size of the semi-crystalline fluorinated
polymer has been found to lead to improvements in the gloss of a coating obtained
from a coating composition containing the semi-crystalline fluorinated polymer, an
optional acrylic polymer and a nucleating agent. A greater distinctness of image (DOI)
may also be attained.
[0019] The term "MV particle size" as used herein refers to the mean diameter in microns
of the "volume distribution," representing the center of gravity of the particle size
distribution. Thus, the MV value may be considered to be the volume average particle
size. Mie or modified Mie calculations are used to calculate the distribution. Implementation
of the equation used to calculate MV shows it to be weighted (strongly influenced)
by a change in the volume amount of large particles in the distribution. MV thus is
one type of average particle size or central tendency. MV particle size is measured
using a Microtrac S3500 particle size analyzer that employs three precisely placed
red laser diodes to characterize particles by utilizing the proven theory of Mie compensation
for spherical particles and the proprietary principle of modified Mie calculations
for non-spherical particles. The Microtrac S3500 particle size analyzer is capable
of measuring particle sizes from 0.02 to 2800 microns.
[0020] The semi-crystalline fluorinated polymer is advantageously a vinylidene difluoride
homopolymer or a copolymer of vinylidene difluoride with one or more fluorinated ethylenic
monomers and/or one or more non-fluorinated ethylenic compounds and/or one or more
non-fluorinated diene, monomers which are copolymerizable with vinylidene difluoride.
The fluorinated ethylenic monomer is advantageously chosen from vinyl fluoride, hexafluoropropylene,
trifluoroethylene, chlorotrifluoroethylene, tetrafluoroethylene, tetrafluoropropylene,
trifluoropropylene or hexafluoroisobutylene, the non-fluorinated ethylenic monomer
is advantageously chosen from the group consisting ofmethacrylic acid, itaconic acid,
maleic acid, malonic acid, acrylic acid, vinyl acetate, vinyl phosphonic acid, vinyl
sulfonic acid, .and vinyl ethers, and the non-fluorinated diene is advantageously
chosen from the group consisting of butadiene, isoprene and chloroprene. The semi-crystalline
fluorinated polymer is advantageously a copolymer of vinylidene difluoride with from
0.1 to 20 mol % of vinyl fluoride or hexafluoropropylene or trifluoroethylene or chlorotrifluoroethylene
or tetrafluoroethylene. In another embodiment, however, the semi-crystalline fluorinated
polymer is a vinylidene difluoride homopolymer.
[0021] To improve the solvent resistance of the coating produced from the coating composition,
it generally will be desirable to employ a semi-crystalline fluorinated polymer having
a relatively high molecular weight, as measured by melt viscosity at 232°C, 100 s
-1 (ASTM D3835). For improved solvent resistance , the preferred melt viscosity is greater
than 700 Pa.s (7 Kps (Kilopoise) melt viscosity at 232°C, 100 s
-1 (ASTM D3835), more preferably 1000-2500 Pa.s (10-25 Kps) melt viscosity at 232°C,
100 s
-1 (ASTM D3835) , most preferably 1500-2000 Pa.s (15-20 kPs) melt viscosity at 232°C,
100 s
-1 (ASTM D3835). Polymer melt viscosity values higher than 2500 Pa.s (25 Kps) generally
are not preferred, however, because they can lead to coatings having lower gloss in
certain applications, such as fast bake coil coatings for example. Conversely, if
high solvent resistance is less important in a particular application, semi-crystalline
fluorinated polymers having melt viscosities of less than 700 Pa.s (7 kPs) at 232°C,
100 s
-1 (ASTM D3835) may also be used, which have the potential of achieving coatings having
even higher gloss values.
[0022] Any suitable technique may be employed to achieve particles of the semi-crystalline
fluorinated polymer having the desired MV characteristics. Milling processes may be
used, in particular processes using jet mills, such as those available from the Fluid
Energy Processing and Equipment Company, Telford, Pennsylvania, U.S.A.
[0023] The nucleating agent component also contributes to improvements in the appearance
of the coatings obtained from the coating compositions described therein. That is,
a consistent increase in gloss may only be attained, independent of baking conditions
and film thickness, when both the MV particle size of the semi-crystalline fluorinated
resin is not greater than 5 microns and a nucleating agent is present in the coating
composition. Suitable nucleating agents are described, for example, in
U.S. Pat. Pub. No. 2005/0032968.
[0024] The nucleating agent may be in the form of particles having a melting point greater
than that of the semi-crystalline fluorinated polymer, and in embodiments of the invention
involving coating compositions, preferably also a melting point greater than the bake
temperature employed in any subsequent baking of the coating composition. The particles
advantageously have a size (MV) of 0.05 microns to 5 microns and preferably have a
size of 0.05 microns to 0.5 microns. This is because a very fine particle size of
the nucleating agent promotes a higher rate of crystallization during the cooling
of the semi-crystalline fluorinated polymer.
[0025] An amount of nucleating agent is present in the coating composition which is effective
to achieve the desired level of improvement in the surface appearance of the coating
obtained by baking a layer of the coating composition on a substrate surface. In various
embodiments of the invention, for example, the coating composition comprises at least
0.01, at least 0.05 or at least 0.1 % by weight nucleating agent based on the total
weight of nucleating agent and semi-crystalline fluorinated polymer. In other embodiments,
the amount of nucleating agent present in the coating composition does not exceed
10 % by weight, does not exceed 5 % by weight, or does not exceed 3 % by weight, based
on the total weight of nucleating agent and semi-crystalline fluorinated polymer.
The coating composition, in certain embodiments of the invention, may contain an amount
of nucleating agent of from 0.01 to 10 % by weight, from 0.05 to 5 % by weight, or
from 0.1 to 3 % by weight, based on the total weight of nucleating agent and semi-crystalline
fluorinated polymer.
[0026] The nucleating agent may be added either to the semi-crystalline fluorinated polymer
or to the optional acrylic polymer modifier or else to a blend of these two polymers.
The semi-crystalline fluorinated polymer and the optional acrylic polymer modifier,
during this addition, can be in the form of a powder or of an aqueous dispersion or
alternatively of a dispersion in a latent solvent for the semi-crystalline fluorinated
polymer.
[0027] In one particularly advantageous embodiment of the invention, a latex of the semi-crystalline
fluorinated polymer and a latex of the nucleating agent are combined to form a blend,
which is then coagulated to obtain a coagulated blend. The coagulated blend may then
be dried to obtain a powder and the powder then milled to achieve particles having
a desired MV particle size (e.g., an MV value of not more than 5 microns). The particles
may then optionally be blended with an acrylic polymer and/or a latent solvent for
the semi-crystalline fluorinated polymer or with water.
[0028] In one embodiment of the invention, a "master batch" is prepared which is a blend
of semi-crystalline fluorinated polymer and nucleating agent, the nucleating agent
being present in an amount higher than that normally employed in a coating composition.
This master batch can then be combined with additional semi-crystalline fluorinated
polymer and optional acrylic polymer (along with possibly other ingredients such as
solvent and/or pigment), to provide the desired coating composition. In one embodiment,
the additional semi-crystalline fluorinated polymer is in the form of particles having
an MV particle size greater than 5 microns. In another embodiment, however, the additional
semi-crystalline fluorinated polymer is in the form of particles having an MV particle
size of not more than 5 microns.
[0029] The nucleating agent, preferably in the form of a latex, is advantageously a tetrafluoroethylene
homopolymer or a copolymer of tetrafluoroethylene with a fluorinated ethylenic compound.
For example, the nucleating agent, preferably in the form of a latex, may be advantageously
chosen from crystalline fluorinated polymers with a melting point greater than that
of the semi-crystalline fluorinated polymer of the formulation. The nucleating agent
may be chosen, for example, from tetrafluoroethylene homopolymers or copolymers of
tetrafluoroethylene with a compound comprising fluorinated ethylenic unsaturation.
It is preferably chosen from a tetrafluoroethylene homopolymer or a copolymer of tetrafluoroethylene
comprising from 0.1 to 20 mol % of vinylidene fluoride, vinyl fluoride, hexafluoropropylene,
trifluoroethylene, chlorotrifluoro-ethylene or hexafluoroisobutylene or alternatively
from poly(ethylene-co-tetrafluoroethylene) (ETFE), poly-(tetrafluoroethylene-co-perfluorovinyl
ethers) (PFA) and irradiated PVDF.
[0030] The optionally present acrylic polymer (acrylic modifier) may be advantageously chosen
from homopolymers and copolymers of one or more methyl or ethyl esters of acrylic
acid and/or of methacrylic acid, optionally with other polymerizable unsaturated monomers
chosen from: other alkyl or hydroxyalkyl esters of acrylic acid or of methacrylic
acid, such as butyl acrylate, 2-ethylhexyl acrylate, hydroxyethyl acrylate, hydroxyethyl
methacrylate, hydroxybutyl acylate, or hydroxypropyl methyacrylate; styrenes, such
as styrene or α-methylstyrene; nitriles, such as acrylonitrile and methacrylonitrile;
vinyls, such as vinyl acetate or vinyl chloride, with the additional condition that
the methyl and/or ethyl acrylate and/or the methyl and/or ethyl methacrylate represent,
by weight, at least 70% of the total weight of the said acrylic polymer. The acrylic
polymer is advantageously obtained by polymerization of one or more of the following
monomers: methyl acrylate, methyl methacrylate, ethyl acrylate, ethyl methacrylate,
butyl acrylate and butyl methacrylate, optionally in combination with one or more
additional comonomers. Copolymers of methylmethacrylate and ethyl acrylate, such as
the product sold under the tradename Paraloid
® B44S by the Dow Chemical, are particularly advantageous. The acrylic polymer may,
for example, have a weight average molecular weight of from 20,000 to 250,000 daltons.
The acrylic polymer may also contain functionality allowing it to be crosslinked with
an added crosslinker. For instance, it may contain hydroxy (-OH) functionality, allowing
it to be crosslinked with an aminoplast or melamine-type crosslinker.
[0031] In advantageous embodiments of coating compositions in accordance with the present
invention, the semi-crystalline fluorinated polymer /acrylic polymer ratio by weight
is from 50/50 to 95/5, e.g., from 65/35 to 85/15 or from 60/40 to 80/20.
[0032] The present invention also comprises a process for the preparation of a dry formulation,
starting from the compositions of the invention, wherein a latex of the semi-crystalline
fluorinated polymer is blended with the nucleating agent, in that the blend obtained
is then coagulated and dried in order to recover a powder, which is then blended with
the optional acrylic polymer and optionally other additives, such as fillers, colorants
(pigments), antistatic agents, dispersants, stabilizers, coupling agents, anti-fogging
agents and/or processing aids, by extrusion at a temperature of 150°C to 280°C. The
extrudate is cooled before being milled to give a fine powder, wherein the milling
is conducted under conditions effective to provide a powder having an MV particle
size of not more than 5 microns (alternatively, not more than 4 microns, not more
than 3 microns, not more than 2 microns, or not more than 1 micron).
[0033] The present invention also provides formulations obtained from the above-described
compositions comprised of small particle size semi-crystalline fluorinated polymer,
nucleating agent and, optionally, acrylic polymer, wherein such compositions are combined
with one or more additional components such as a liquid medium (e.g., a latent solvent
or water), colorants (pigments), antistatic agents, dispersants, processing aids.
[0034] Thus, for example, by blending a semi-crystalline fluorinated polymer latex with
a latex of the nucleating agent, then coagulating and drying the blend obtained in
order to recover a powder, then milling the powder to achieve a desired small particle
size (e.g., an MV particle size not more than 5 microns) and then blending this milled
powder with the optional acrylic polymer and optionally other additives, such as fillers,
colorants (pigments) or processing aids, by dispersing these components in a latent
solvent, a coating composition is obtained which is characterized in that it comprises
a latent solvent for the semi-crystalline fluorinated polymer of the composition.
[0035] One or more organic solvents capable of acting as a latent solvent for the semi-crystalline
fluorinated polymer may be employed in the coating compositions of the present invention;
that is, the semi-crystalline fluorinated polymer is substantially insoluble and dispersed
in the solvent at room temperature but becomes solvated or dissolved in the solvent
when the composition is heated.
[0036] In some instances, it may be preferable to choose a solvent (e.g., a phthalate) that
will not be totally volatilized under the baking conditions used, so that the residual
solvent remaining in the film can act as a plasticizer. For other applications, it
may be preferable to choose a solvent that will be essentially completely volatilized
under the baking conditions employed. In one embodiment, the solvent has a boiling
point at atmospheric pressure of from 170°C to 400°C.
[0037] Solvents useful in the invention include, but are not limited to, glycol ethers (e.g.,
monoalkyl and aryl ethers of ethylene glycol, propylene glycol, diethylene glycol,
dipropylene glycol, the alkyl or aryl group being methyl, ethyl, n-propyl, isopropyl,
butyl, phenyl, glycerol esters, glycol esters, esters (e.g., butyrates) of other aliphatic
polyols, phthalates, adipates, benzoates, azelates, carbonates, trimellitates, phosphates,
citrates, stearates, sebacates, glutarates, oleates, alkyds, polymeric esters, epoxidized
oils, epoxy tallates, amide-esters, sulfonamides, terpenes, aromatics and ketones,
esters of aliphatic dibasic acids and di- or triesters of aliphatic polyols and monoesters
of alkyleneoxy ethers.
[0038] Other exemplary suitable solvents for use in the present invention include polyol
diesters, such as triethylene glycol bis(2-ethylhexanoate) (TEG-EH), and esterified
ethers, e.g., esters of glycol monoethers such as propylene glycol methyl ether acetate
(PMA), dipropylene glycol methyl ether acetate (DPMA), ethylene glycol methylether
acetate and diethylene glycol ethyl ether acetate.
[0039] Other exemplary useful solvents which may be present to some extent as part of the
solvent portion of the present compositions include phthalates such as butyl benzyl
phthalate and dialkyl phthalates (e.g., di(2-ethylhexyl) phthalate, dimethyl phthalate
and dioctyl phthalate); aromatics such as toluene and xylenes; ketones such as isophorone;
aliphatic dibasic acid esters such as dioctyl azelate, diisodecyl adipate and di(2-ethylhexyl)
sebacate; phosphates such as trioctyl phosphate and 2-ethylhexyl diphenyl phosphate;
epoxy plasticizers such as epoxidized soybean oil, epoxidized tall oil fatty acid
2-ethylhexyl esters, and other conventional polyester solvents commonly employed as
plasticizers.
[0040] The amount of latent solvent employed in the coating composition may be varied as
may be desired in order to influence the properties and characteristics of the coating
composition and the coatings obtained therefrom. For example, in various embodiments
of the invention latent solvent (which may be either a single solvent or a mixture
of solvents) may comprise 35 to 85 % by weight, 40 to 80 % by weight, or 45 to 75
% by weight, of the coating composition.
[0041] Analogously to the above-described coating compositions containing latent solvent,
a coating composition may be prepared which comprises water as an agent for dispersing
the solid particulate components of the composition. One suitable process for obtaining
this type of coating composition involves blending a semi-crystalline fluorinated
polymer latex with a latex of the nucleating agent, coagulating the blend obtained,
drying the coagulated blend to recover a powder, and milling the recovered powder
to attain the desired particle size (e.g., an MV particle size not more than 5 microns).
This milled powder is then optionally blended with the acrylic polymer and optionally
other additives, such as fillers, colorants (pigments) and/or processing aids and
the blend dispersed in water.
[0042] An alternative way of preparing coating compositions in accordance with the present
invention is to process a semi-crystalline fluorinated polymer to attain an MV particle
size of not more than 5 microns (by milling, in particular by air milling) and then
combine the particulate semi-crystalline fluorinated polymer with the other components
of the composition. During such processing, the semi-crystalline fluorinated polymer
may be in either dry or latex form. For example, where the coating composition is
to be applied to a substrate surface in dry powder form or in combination with a latent
solvent, the particle size reduction may be carried out while the semi-crystalline
fluorinated polymer is in dry form. Where the coating composition is to be applied
to a substrate surface in latex form (i.e., as a dispersion in water), the particle
size reduction may be carried out while the semi-crystalline fluorinated polymer is
in latex form.
[0043] In yet another embodiment of the invention, the semi-crystalline fluorinated polymer
may be combined with one or more or all of the desired additional components of the
coating composition and then subjected to processing (e.g., milling) under conditions
effective to reduce the particle size of the semi-crystalline fluorinated polymer
to 5 microns or less.
[0044] If the particles of semi-crystalline fluorinated polymer exhibit a tendency to agglomerate,
it may be advantageous to combine the components of the coating composition and carry
out a homogenization procedure or other such procedure in which the coating composition
is subjected to high shear mixing, in order to break up such agglomerates, prior to
applying the coating composition to a substrate surface.
[0045] The present invention also relates to the coatings obtained from the above formulations.
Such coatings have an overall semi-crystalline fluorinated polymer/nucleating agent/(optional)
acrylic polymer composition substantially identical to that of the starting composition
which was employed. Each of these coatings may be characterized in that it is in the
form of a continuous film covering the substrate with strong adhesion and high gloss.
[0046] The present invention also comprises a process for obtaining a coating from one of
the above coating compositions, wherein the process comprises a stage of baking the
substrate covered with the formulation at a temperature T which is high enough to
produce a liquid phase comprising the semi-crystalline fluorinated polymer and in
which the nucleating agent remains at least partially in the form of solid crystalline
seeds, this temperature T being below the melting temperature of the nucleating agent,
and a cooling stage (in which the semi-crystalline fluorinated polymer may at least
partially crystallize with the formation of spherulites with a size of less than 5
microns). The baking temperature may range, for example, from 150°C to 275°C. If the
coating composition comprises a latent solvent, such baking is effective to remove
at least a portion of the latent solvent (as previously mentioned, a portion of the
latent solvent may be retained in the coating after baking and serve as a plasticizer
for the coating). Similarly, if the coating composition is in the form of an aqueous
latex, such baking typically removes substantially all of the water initially present.
[0047] A coating capable of being obtained by the baking and the cooling of a substrate
covered with the coating composition of the present invention may thus be obtained,
characterized in that it is in the form of a continuous film which adheres to the
substrate while covering it, this film comprising semi-crystalline fluorinated polymer
spherulites with a size of less than 5 microns, and in that the composition of this
film is overall the same as the composition used in the preparation of the formulation
(except, of course, for any volatile components such as volatile latent solvent or
water which may be removed during the baking). Such coatings have the advantages of
being stable over time and of being glossier than the coatings obtained from similar
compositions without a nucleating agent and containing semi-crystalline fluorinated
polymer having an MV particle size greater than 5 microns.
[0048] The coating compositions of the invention may be applied to a substrate by means
known in the art, including but not limited to brushing, bar coating, roll coating,
inkjet application and spraying, as well as powder coating. The coating may be applied
to one, or more sides of the substrate. The substrate is generally metallic, including
but not limited to aluminum, hot dipped galvanized steel, and zinc-aluminum alloys
on steel. Two or more coats of the coating composition may be added, and the metal
may be cleaned, pretreated and/or physically or chemically primed prior to coating.
Following application of the coating composition, the substrate is heated to cure
the coating composition and form a tough film. The coating compositions of the present
invention may be formulated so as to provide coil coating and/or spray formulations.
[0049] Where large rolls of thin gauge metal are to be coated, it is advantageous to apply
the coating composition via a coil coating process, such as reverse roll coating.
When the coating is carried out using such a process, the coated metal substrate is
typically cured by heating for 10 to 50 seconds at a temperature of 200°C to 300°C.
If a spray coating process is used, the resulting film is usually cured by heating
for 10 to 15 minutes at a temperature of 210°C to 270°C. The baking temperatures are
not critical, but must be high enough to cause the semi-crystalline fluorinated polymer
particles in the coating composition to coalesce into a continuous film.
[0050] The coatings thereby obtained have improved gloss, high organic solvent resistance
and very good flexibility.
[0051] In a further embodiment of the invention, the coating composition of the present
invention may be utilized as a top coat, with one or more other layers of coating
(which may or may not be in accordance with the present invention) being formed on
the surface of a substrate prior to application of the top coat. One or more base
coats thus may be present between the substrate surface and a top coat formed from
a coating composition in accordance with the present invention. The base coat(s) may
be pigmented and the top coat may be clear (unpigmented).
Examples
[0052] The following examples are intended to illustrate further various aspects of the
present invention, but are not intended to limit the scope of the invention in any
aspect.
[0053] Paint formulations (coating compositions) were prepared in accordance with the formulations
shown below:
TABLE 1
| |
Coil Formulation 1 |
Coil Formulation 2 |
Coil Formulation 3 |
Coil Formulation 4 |
| PVDF Resin |
30 |
20.5 |
22.1 |
22.1 |
| Paraloid® B44S (40% in toluene) |
28 |
21.9 |
23.6 |
23.6 |
| DuPont R960 TiO2 |
- |
15.8 |
- |
- |
| Shepherd Black 10C909 |
- |
- |
13.5 |
- |
| Shepherd Green 30C612 |
- |
- |
- |
13.5 |
| Isophorone |
32 |
41.8 |
40.8 |
40.8 |
| Xylene |
10 |
- |
- |
- |
TABLE 2
| |
Spray formulation 1 |
Spray formulation 2 |
Spray formulation 3 |
| PVDF Resin |
22.3 |
25.2 |
25.2 |
| Paraloid® B44S (40% in toluene) |
25 |
27 |
27 |
| DuPont R960 TiO2 |
18 |
- |
- |
| Shepherd Black 10C909 |
- |
15.4 |
- |
| Shepherd Green 30C612 |
- |
- |
15.4 |
| Carbitol Acetate (diethylene glycol ethyl ether acetate) |
24.9 |
25.1 |
25.1 |
| Dimethyl Phthalate |
10.6 |
10.6 |
10.6 |
| Ethylene glycol methyl ether acetate |
24.9 |
25.1 |
25.1 |
[0054] As will be described subsequently, the PVDF resins used in the formulations were
either nucleated (with PTFE) or non-nucleated. Paraloid
® B44S is an acrylic resin sold by Dow Chemical.
[0055] The above paint formulations were then cast on chromated aluminum AA3003 panels using
wire-wrapped draw down rods (#52). The resulting panels from coil formulations were
baked at 307°C (585°F) for 45 seconds followed by quench with cold water. The panels
from spray formulations were baked at 238°C (460°F) for 10 minutes followed by air
cooling.
[0056] Gloss was read using a HunterLab ProGloss 3 (Geometry 60°). The particle size distribution
of PVDF powders was tested using a Microtrac S3500 particle size analyzer. The sample
for the PSD measurement is prepared by adding 0.5g PVDF powder into 2ml Triton
® X-100 surfactant (10% solution in water) in a 100ml glass beaker and mixing the surfactant
and powder thoroughly and dispersing in ~60ml of DI water, followed by ultrasonic
for 30 s with an external ultrasonic probe. The nucleated PVDF resins were prepared
by physically blending latex (98-99.9 part 30% PVDF latex (wherein the PVDF is a homopolymer
of vinylidene difluoride having a melt viscosity of 3000 Pa.s (30 Kps) at100 s
-1, as measured by ASTM D3835 at 232°C) and 0.05-1 part 60% PTFE latex) followed by
isolating and drying. The non-nucleated PVDF resins contained only the homopolymer
of vinylidene difluoride. The resulting tested PVDF samples contained nucleation %
in the range of 0-2% based on total PVDF weight. The samples were then milled to the
desired particle size.
TABLE 3
| Gloss value @ 60° of tested formulations |
| |
|
Nucleation (%) |
MV (µm) |
Coil formulations |
Spray formulations |
| 1 |
2 |
3 |
4 |
1 |
2 |
3 |
| Comparative examples |
PVDF 1 |
0 |
5.20 |
57 |
38 |
44 |
32 |
34 |
28 |
40 |
| PVDF 2 |
0 |
2.80 |
78 |
47 |
55 |
51 |
33 |
28 |
40 |
| PVDF 3 |
2 |
7.16 |
48 |
31 |
38 |
31 |
39 |
46 |
57 |
| Working examples (invention) |
PVDF 4 |
0.1 |
2.73 |
81 |
48 |
66 |
57 |
47 |
53 |
66 |
| PVDF 5 |
0.2 |
2.78 |
82 |
51 |
64 |
60 |
51 |
58 |
66 |
| PVDF 6 |
0.3 |
2.72 |
81 |
56 |
64 |
61 |
56 |
61 |
68 |
| PVDF 7 |
1 |
2.69 |
82 |
59 |
66 |
58 |
62 |
60 |
70 |
| PVDF 8 |
2 |
4.22 |
81 |
67 |
71 |
57 |
63 |
64 |
60 |
| PVDF 9 |
2 |
2.60 |
85 |
71 |
74 |
63 |
68 |
68 |
69 |
[0057] A significant gloss was seen with the nucleated PVDF samples having smaller particle
size (MV <5 µm) in all tested formulations including both coil and spray applications.
Thus, to achieve a higher gloss, the combination of particle size with MV <5 µm and
nucleation with 0.1% PTFE was concluded to be sufficient for potentially universal
application across a range of formulations.
[0058] Within this specification embodiments have been described in a way which enables
a clear and concise specification to be written, but it is intended and will be appreciated
that embodiments may be variously combined or separated without parting from the invention.
For example, it will be appreciated that all preferred features described herein are
applicable to all aspects of the invention described herein.
1. A coating composition comprised of:
a) a semi-crystalline fluorinated polymer in the form of particles having an MV particle
size of not more than 5 µm (microns), the MV value being the volume average particle
size, wherein the volume distribution is determined using the Mie or modified Mie
calculations, said MV particle size being measured using a Microtrac S3500 particle
size analyzer;
b) a nucleating agent; and
c) optionally, an acrylic polymer,
wherein the semi-crystalline fluorinated polymer is a homopolymer of vinylidene difluoride
or a copolymer of vinylidene difluoride and at least one comonomer selected from the
group consisting of fluorinated ethylenic monomers, non-fluorinated ethylenic monomers
and non-fluorinated dienes,
wherein said particles are a milled powder,
wherein the nucleating agent is in the form of particles having an MV particle size
of not more than 5 µm (microns), the MV value being the volume average particle size,
wherein the volume distribution is determined using the Mie or modified Mie calculations,
said MV particle size being measured using a Microtrac S3500 particle size analyzer,
according to the procedure set out in the description, and
wherein the nucleating agent is a tetrafluoroethylene homopolymer or a copolymer of
tetrafluoroethylene and at least one fluorinated ethylenic monomer.
2. The coating composition of claim 1, wherein the coating composition is additionally
comprised of at least one latent solvent for the semi-crystalline fluorinated polymer.
3. The coating composition of claim 1, wherein the coating composition is in the form
of a dry, free-flowing powder.
4. The coating composition of claim 1, wherein the coating composition is in the form
of an aqueous latex.
5. The coating composition of claim 1, wherein the coating composition is additionally
comprised of at least one pigment.
6. The coating composition of claim 1, wherein the coating composition is comprised of
from 0.01 to 10 % by weight of nucleating agent, based on the total weight of nucleating
agent and semi-crystalline fluorinated polymer.
7. The coating composition of claim 1, wherein the acrylic polymer is present and the
acrylic polymer is a polymer of monomers which include one or more monomers selected
from the group consisting of methyl (meth)acrylate, ethyl (meth)acrylate and butyl(meth)acrylate.
8. The coating composition of claim 1, wherein the particles have an MV particle size
of not more than 4 µm (microns).
9. The coating composition of claim 1, wherein the nucleating agent has a melting point
greater than that of the semi-crystalline fluorinated polymer.
10. The coating composition of claim 1, wherein the semi-crystalline fluorinated polymer
has a melt viscosity of at least 7 Kps at 100 s-1, as measured by ASTM D3835 at 232°C.
11. A coating on a substrate, wherein the coating has been produced from a coating composition
in accordance with claim 1.
12. A method of making a coating composition, comprising blending a latex of a semi-crystalline
fluorinated polymer with a latex of a nucleating agent to obtain a blend, coagulating
the blend to obtain a coagulated blend, drying the coagulated blend to obtain a powder,
milling the powder to achieve particles having an MV particle size of not more than
5 microns, and, optionally, blending the milled particles with an acrylic polymer,
the MV value being the volume average particle size, wherein the volume distribution
is determined using the Mie or modified Mie calculations, said MV particle size being
measured using a Microtrac S3500 particle size analyzer.
13. The method of claim 12, wherein the milled particles are additionally blended with
a latent solvent for the semi-crystalline fluorinated polymer.
14. A method of making a coating on a substrate, comprising a stage of baking a substrate
covered with a coating composition in accordance with claim 1.
1. Beschichtungszusammensetzung, bestehend aus:
a) einem teilkristallinen fluorierten Polymer in Form von Teilchen mit einer MV-Teilchengröße
von nicht mehr als 5 µm (Mikron), wobei es sich bei dem MV-Wert um die volumenmittlere
Teilchengröße handelt, wobei die Volumenverteilung unter Verwendung der Mie- oder
modifizierten Mie-Berechnungen bestimmt wird, wobei die MV-Teilchengröße auf einem
Teilchengrößenanalysator des Typs Microtrac S3500 gemessen wird;
b) einem Nukleierungsmittel und
c) gegebenenfalls einem Acrylpolymer,
wobei es sich bei dem teilkristallinen fluorierten Polymer um ein Homopolymer von
Vinylidendifluorid oder ein Copolymer von Vinylidendifluorid und mindestens einem
Comonomer aus der Gruppe bestehend aus fluorierten ethylenischen Monomeren, nichtfluorierten
ethylenischen Monomeren und nichtfluorierten Dienen handelt,
wobei es sich bei den Teilchen um ein gemahlenes Pulver handelt,
wobei das Nukleierungsmittel in Form von Teilchen mit einer MV-Teilchengröße von nicht
mehr als 5 µm (Mikron) vorliegt, wobei es sich bei dem MV-Wert um die volumenmittlere
Teilchengröße handelt, wobei die Volumenverteilung gemäß der in der Beschreibung angegebenen
Verfahrensweise unter Verwendung der Mie- oder modifizierten Mie-Berechnungen bestimmt
wird, wobei die MV-Teilchengröße auf einem Teilchengrößenanalysator des Typs Microtrac
S3500 gemessen wird; und
wobei es sich bei dem Nukleierungsmittel um ein Tetrafluorethylen-Homopolymer oder
ein Copolymer von Tetrafluorethylen und mindestens einem fluorierten ethylenischen
Monomer handelt.
2. Beschichtungszusammensetzung nach Anspruch 1, wobei die Beschichtungszusammensetzung
zusätzlich aus mindestens einem latenten Lösungsmittel für das teilkristalline fluorierte
Polymer besteht.
3. Beschichtungszusammensetzung nach Anspruch 1, wobei die Beschichtungszusammensetzung
in Form eines trockenen, frei fließenden Pulvers vorliegt.
4. Beschichtungszusammensetzung nach Anspruch 1, wobei die Beschichtungszusammensetzung
in Form eines wässrigen Latex vorliegt.
5. Beschichtungszusammensetzung nach Anspruch 1, wobei die Beschichtungszusammensetzung
zusätzlich aus mindestens einem Pigment besteht.
6. Beschichtungszusammensetzung nach Anspruch 1, wobei die Beschichtungszusammensetzung
aus 0,01 bis 10 Gew.-% Nukleierungsmittel, bezogen auf das Gesamtgewicht von Nukleierungsmittel
und teilkristallinem fluoriertem Polymer, besteht.
7. Beschichtungszusammensetzung nach Anspruch 1, wobei das Acrylpolymer vorliegt und
es sich bei dem Acrylpolymer um ein Polymer von Monomeren, die ein oder mehrere Monomere
aus der Gruppe bestehend aus Methyl(meth)acrylat, Ethyl(meth)acrylat und Butyl-(meth)acrylat
enthalten, handelt.
8. Beschichtungszusammensetzung nach Anspruch 1, wobei die Teilchen eine MV-Teilchengröße
von nicht mehr als 4 µm (Mikron) aufweisen.
9. Beschichtungszusammensetzung nach Anspruch 1, wobei das Nukleierungsmittel einen höheren
Schmelzpunkt als das teilkristalline fluorierte Polymer aufweist.
10. Beschichtungszusammensetzung nach Anspruch 1, wobei das teilkristalline fluorierte
Polymer eine Schmelzeviskosität von mindestens 7 Kps bei 100 s-1 gemäß Messung nach ASTM D3835 bei 232°C aufweist.
11. Beschichtung auf einem Substrat, wobei die Beschichtung aus einer Beschichtungszusammensetzung
gemäß Anspruch 1 hergestellt wurde.
12. Verfahren zur Herstellung einer Beschichtungszusammensetzung, umfassend das Mischen
eines Latex eines teilkristallinen fluorierten Polymers mit einem Latex eines Nukleierungsmittels
unter Erhalt einer Mischung, das Koagulieren der Mischung unter Erhalt einer koagulierten
Mischung, das Trocknen der koagulierten Mischung unter Erhalt eines Pulvers, das Mahlen
des Pulvers unter Erhalt von Teilchen mit einer MV-Teilchengröße von nicht mehr als
5 Mikron und gegebenenfalls das Mischen der gemahlenen Teilchen mit einem Acrylpolymer,
wobei es sich bei dem MV-Wert um die volumenmittlere Teilchengröße handelt, wobei
die Volumenverteilung unter Verwendung der Mie- oder modifizierten Mie-Berechnungen
bestimmt wird, wobei die MV-Teilchengröße auf einem Teilchengrößenanalysator des Typs
Microtrac S3500 gemessen wird.
13. Verfahren nach Anspruch 12, wobei die gemahlenen Teilchen zusätzlich mit einem latenten
Lösungsmittel für das teilkristalline fluorierte Polymer gemischt werden.
14. Verfahren zur Herstellung einer Beschichtung auf einem Substrat, umfassend eine Stufe
des Brennens eines mit einer Beschichtungszusammensetzung gemäß Anspruch 1 bedeckten
Substrats.
1. Composition de revêtement composée de :
a) un polymère fluoré semi-cristallin sous la forme de particules possédant une taille
de particule MV de pas plus de 5 µm (microns), la valeur MV étant la taille moyenne
de particule en volume, la distribution volumique étant déterminée en utilisant les
calculs de Mie ou de Mie modifiés, ladite taille de particule MV étant mesurée en
utilisant un analyseur de taille de particule Microtrac S3500 ;
b) un agent de nucléation ; et
c) éventuellement, un polymère acrylique ;
le polymère fluoré semi-cristallin étant un homopolymère de difluorure de vinylidène
ou un copolymère de difluorure de vinylidène et d'au moins un comonomère choisi dans
le groupe constitué par des monomères éthyléniques fluorés, des monomères éthyléniques
non fluorés et des diènes non fluorés, lesdites particules étant une poudre broyée,
l'agent de nucléation étant sous la forme de particules possédant une taille de particule
MV de pas plus de 5 µm (microns), la valeur MV étant la taille moyenne de particule
en volume, la distribution volumique étant déterminée en utilisant les calculs de
Mie ou de Mie modifiés, ladite taille de particule MV étant mesurée en utilisant un
analyseur de taille de particule Microtrac S3500, selon la procédure indiquée dans
la description, et
l'agent de nucléation étant un homopolymère de tétrafluoroéthylène ou un copolymère
de tétrafluoroéthylène et d'au moins un monomère éthylénique fluoré.
2. Composition de revêtement selon la revendication 1, la composition de revêtement étant
de plus composée d'au moins un solvant latent pour le polymère fluoré semi-cristallin.
3. Composition de revêtement selon la revendication 1, la composition de revêtement étant
sous la forme d'une poudre sèche, à écoulement libre.
4. Composition de revêtement selon la revendication 1, la composition de revêtement étant
sous la forme d'un latex aqueux.
5. Composition de revêtement selon la revendication 1, la composition de revêtement étant
de plus composée d'au moins un pigment.
6. Composition de revêtement selon la revendication 1, la composition de revêtement étant
composée de 0,01 à 10 % en poids d'agent de nucléation, sur la base du poids total
d'agent de nucléation et de polymère fluoré semi-cristallin.
7. Composition de revêtement selon la revendication 1, le polymère acrylique étant présent
et le polymère acrylique étant un polymère de monomères qui comprennent un ou plusieurs
monomères choisis dans le groupe constitué par un (méth)acrylate de méthyle, un (méth)acrylate
d'éthyle et un (méth)acrylate de butyle.
8. Composition de revêtement selon la revendication 1, les particules possédant une taille
de particule MV de pas plus de 4 µm (microns).
9. Composition de revêtement selon la revendication 1, l'agent de nucléation possédant
un point de fusion supérieur à celui du polymère fluoré semi-cristallin.
10. Composition de revêtement selon la revendication 1, le polymère fluoré semi-cristallin
possédant une viscosité à l'état fondu d'au moins 7 Kps à 100 s-1, telle que mesurée selon la norme ASTM D3835 à 232 °C.
11. Revêtement sur un substrat, le revêtement ayant été produit à partir d'une composition
de revêtement conformément à la revendication 1.
12. Procédé de préparation d'une composition de revêtement, comprenant le mélangeage d'un
latex d'un polymère fluoré semi-cristallin avec un latex d'un agent de nucléation
pour obtenir un mélange, la coagulation du mélange pour obtenir un mélange coagulé,
le séchage du mélange coagulé pour obtenir une poudre, le broyage de la poudre pour
obtenir des particules possédant une taille de particule MV de pas plus de 5 microns,
et, éventuellement, le mélangeage des particules broyées avec un polymère acrylique,
la valeur MV étant la taille moyenne de particule en volume, la distribution volumique
étant déterminée en utilisant les calculs de Mie ou de Mie modifiés, ladite taille
de particule MV étant mesurée en utilisant un analyseur de taille de particule Microtrac
S3500.
13. Procédé selon la revendication 12, les particules broyées étant de plus mélangées
avec un solvant latent pour le polymère fluoré semi-cristallin.
14. Procédé de préparation d'un revêtement sur un substrat, comprenant un stade de cuisson
d'un substrat recouvert par une composition de revêtement conformément à la revendication
1.